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I got some problem on template.This code passed under vc6 but failed under g++. Is there anybody could tell me the reason? thanks.

#include<iostream>
using namespace std;

template<class T>
T min(T x, T y) {
    return (x < y ? x : y);
}

int main() {
    int i1 = 23, i2 = 15, i;
    float f1 = 23.04, f2 = 43.2, f;
    double d1 = 0.421342, d2 = 1.24342343, d;
    i = min(i1, i2);
    f = min(f1, f2);
    d = min(d1, d2);
    cout << "The smaller of " << i1 << " and " << i2 << " is " << i << endl;
    cout << "The smaller of " << f1 << " and " << f2 << " is " << f << endl;
    cout << "The smaller of " << d1 << " and " << d2 << " is " << d << endl;
}

"/usr/bin/make" -f nbproject/Makefile-Debug.mk QMAKE= SUBPROJECTS= .build-conf "/usr/bin/make" -f nbproject/Makefile-Debug.mk dist/Debug/GNU-MacOSX/traincpp mkdir -p build/Debug/GNU-MacOSX rm -f build/Debug/GNU-MacOSX/newmain.o.d g++ -c -g -MMD -MP -MF build/Debug/GNU-MacOSX/newmain.o.d -o build/Debug/GNU-MacOSX/newmain.o newmain.cpp newmain.cpp: In function 'int main()': newmain.cpp:13: error: call of overloaded 'min(int&, int&)' is ambiguous newmain.cpp:5: note: candidates are: T min(T, T) [with T = int] /usr/include/c++/4.2.1/bits/stl_algobase.h:182: note: const _Tp& std::min(const _Tp&, const _Tp&) [with _Tp = int] newmain.cpp:14: error: call of overloaded 'min(float&, float&)' is ambiguous newmain.cpp:5: note: candidates are: T min(T, T) [with T = float] /usr/include/c++/4.2.1/bits/stl_algobase.h:182: note: const _Tp& std::min(const _Tp&, const _Tp&) [with _Tp = float] newmain.cpp:15: error: call of overloaded 'min(double&, double&)' is ambiguous newmain.cpp:5: note: candidates are: T min(T, T) [with T = double] /usr/include/c++/4.2.1/bits/stl_algobase.h:182: note: const _Tp& std::min(const _Tp&, const _Tp&) [with _Tp = double] make[2]: * [build/Debug/GNU-MacOSX/newmain.o] Error 1 make[1]: [.build-conf] Error 2 make: ** [.build-impl] Error 2

生成 失败 (退出值 2, 总计时间: 623毫秒)

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4 Answers

up vote 8 down vote accepted

It's because you've imported all of the std namespace, which is a no-no. Note the other candidates are template std::min. Remove the using namespace std; and either import select symbols:

using std::cout;
using std::endl;

or qualify them:

std::cout << "The smaller of " << i1 << " and " << i2 << " is " << i << std::endl;
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6  
    
Sorry for my foolish mistake. –  Shisoft May 4 '11 at 18:15
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Probably you already have a definition for min() in g++.

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1  
Not probably but definitely. min is a standard C++ template function in std namespace, which got imported. –  user405725 May 4 '11 at 18:13
    
Was probably cause must be a beginner who did not know it! –  user349026 May 4 '11 at 18:14
    
bingo! I am a beginner in cpp –  Shisoft May 4 '11 at 18:23
    
@Shisoft, Well good to know that you accept it and are willing to learn. Good luck with C++ !!! –  user349026 May 4 '11 at 18:25
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Your iostream include appears to also be bringing in the standard min call as well and the compiler can't figure out if you want the standard one (because of your using namespace) or your own. Just remove your own min and use the standard library's version.

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The include brings in std::min which is fine. The problem is the using namespace std –  Brian Roach May 4 '11 at 18:17
    
This is a practice of college course,I have solved this problem by change the name. –  Shisoft May 4 '11 at 18:24
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instead of writing std::cout, u may use the namespace std, and create your function min in another namespace, say abc... so now when u call your function min, just write abc::min.. this should solve your problem.

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